Analysis of operation of a micro-cogenerator with two solid oxide fuel cells stacks for maintaining neutral water balance
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DOI: 10.1016/j.energy.2018.04.015
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References listed on IDEAS
- Green, R & Staffell, I, 2012.
"The cost of domestic fuel cell micro-CHP systems,"
Working Papers
10044/3/9844, Imperial College, London, Imperial College Business School.
- Green, R & Staffell, I, 2012. "The cost of domestic fuel cell micro-CHP systems," Working Papers 10044/2/9844, Imperial College, London, Imperial College Business School.
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Cited by:
- Szczęśniak, Arkadiusz & Milewski, Jarosław & Szabłowski, Łukasz & Bujalski, Wojciech & Dybiński, Olaf, 2020. "Dynamic model of a molten carbonate fuel cell 1 kW stack," Energy, Elsevier, vol. 200(C).
- Kotowicz, Janusz & Uchman, Wojciech, 2021. "Analysis of the integrated energy system in residential scale: Photovoltaics, micro-cogeneration and electrical energy storage," Energy, Elsevier, vol. 227(C).
- Guo, Xinru & Zhang, Houcheng, 2020. "Performance analyses of a combined system consisting of high-temperature polymer electrolyte membrane fuel cells and thermally regenerative electrochemical cycles," Energy, Elsevier, vol. 193(C).
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Keywords
SOFC; Micro-cogeneration; Water management; System analysis; Modeling;All these keywords.
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